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Features of recording the analytical signal of beryllium using APESI mass-spectrometry and different procedures of sample preparation

https://doi.org/10.26896/1028-6861-2020-86-7-7-11

Abstract

The significance of the problem of determining the concentration of beryllium in solutions is substantiated. A method of APESI mass-spectrometry (atmospheric pressure electrospray ionization with in-source atomization) is compared with a number of other common procedures used for solving the aforementioned problem and a number of advantages of APESI mass spectrometry are highlighted. The possibility of measuring the beryllium concentration in various chemical forms using APESI mass-spectrometry is studied. We used sulfate, nitric acid and chloride salts of beryllium. The measurements were carried out on a specialized small-sized mass spectrometer MI-20 «LowMass» developed at MS-Bio Company, Russia. A schematic diagram of the device designed to determine the concentration of beryllium in solutions is presented and described. A technique of solution preparation and measurement procedure are proposed. Presented ass spectra obtained on the samples containing beryllium and lithium isotopes were used as an internal standard. It is shown that beryllium can be detected from the salts of chloride and nitric acids with close relative sensitivity coefficients. The obtained detection limit for beryllium chloride in those measurements was ~1 – 2 × 10–8 M. At the same time, the analytical signal of beryllium cannot be detected during electrospray of the solution of beryllium sulfate under any experimental conditions. It has been suggested that this effect may be attributed to the features of dissolution of beryllium sulfate, in particular, to hydrolysis and formation of complex compounds with sulfate, including complex polymer and colloidal forms.

About the Authors

A. A. Dyachenko
Institute for Analytical Instrumentation of the Russian Academy of Sciences
Russian Federation

Artem A. Dyachenko

26 Rizhsky pr., St. Petersburg, 190103



N. M. Blashenkov
Physical-Technical Institute of the Russian Academy of Sciences (Ioffe Institute)
Russian Federation

Nikolay M. Blashenkov

26 Politekhnicheskaya ul., St. Petersburg, 194021



N. S. Samsonova
Physical-Technical Institute of the Russian Academy of Sciences (Ioffe Institute)
Russian Federation

Natalya S. Samsonova

26 Politekhnicheskaya ul., St. Petersburg, 194021



L. N. Gall
Institute for Analytical Instrumentation of the Russian Academy of Sciences
Russian Federation

Lidia N. Gall

26 Rizhsky pr., St. Petersburg, 190103



A. A. Semyonov
A. A. Bochvar All-Russian Scientific Research Institute for Inorganic Materials
Russian Federation

Aleksandr A. Semyonov

5a Rogova ul., Moscow, 123098



A. V. Lizunov
A. A. Bochvar All-Russian Scientific Research Institute for Inorganic Materials
Russian Federation

Alexey V. Lizunov

5a Rogova ul., Moscow, 123098



N. R. Gall
Physical-Technical Institute of the Russian Academy of Sciences (Ioffe Institute)
Russian Federation

Nikolay R. Gall

26 Politekhnicheskaya ul., St. Petersburg, 194021



O. A. Belyaeva
LLC «MS-Bio»
Russian Federation

Olga A. Belyaeva

Zheleznovodskaya ul., 17/5 D, St. Petersburg, 199155



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Review

For citations:


Dyachenko A.A., Blashenkov N.M., Samsonova N.S., Gall L.N., Semyonov A.A., Lizunov A.V., Gall N.R., Belyaeva O.A. Features of recording the analytical signal of beryllium using APESI mass-spectrometry and different procedures of sample preparation. Industrial laboratory. Diagnostics of materials. 2020;86(7):7-11. (In Russ.) https://doi.org/10.26896/1028-6861-2020-86-7-7-11

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ISSN 1028-6861 (Print)
ISSN 2588-0187 (Online)